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On-surface synthesis of disilabenzene-bridged covalent organic frameworks
On-surface synthesis of disilabenzene-bridged covalent organic frameworks
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On-surface synthesis of disilabenzene-bridged covalent organic frameworks
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On-surface synthesis of disilabenzene-bridged covalent organic frameworks
On-surface synthesis of disilabenzene-bridged covalent organic frameworks

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On-surface synthesis of disilabenzene-bridged covalent organic frameworks
On-surface synthesis of disilabenzene-bridged covalent organic frameworks
Journal Article

On-surface synthesis of disilabenzene-bridged covalent organic frameworks

2023
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Overview
Substituting carbon with silicon in organic molecules and materials has long been an attractive way to modify their electronic structure and properties. Silicon-doped graphene-based materials are known to exhibit exotic properties, yet conjugated organic materials with atomically precise Si substitution have remained difficult to prepare. Here we present the on-surface synthesis of one- and two-dimensional covalent organic frameworks whose backbones contain 1,4-disilabenzene (C4Si2) linkers. Silicon atoms were first deposited on a Au(111) surface, forming a AuSix film on annealing. The subsequent deposition and annealing of a bromo-substituted polyaromatic hydrocarbon precursor (triphenylene or pyrene) on this surface led to the formation of the C4Si2-bridged networks, which were characterized by a combination of high-resolution scanning tunnelling microscopy and photoelectron spectroscopy supported by density functional theory calculations. Each Si in a hexagonal C4Si2 ring was found to be covalently linked to one terminal Br atom. For the linear structure obtained with the pyrene-based precursor, the C4Si2 rings were converted into C4Si pentagonal siloles by further annealing.Incorporating silicon into organic molecules and materials leads to interesting changes in electronic structure and properties; silabenzenes are attractive species for this purpose, but their high reactivity in solution poses challenges. Now, 1D and 2D covalent organic frameworks featuring disilabenzene rings (C4Si2) as linkers have been prepared by reacting silicon atoms and polyaromatic hydrocarbon precursors on a Au(111) surface.